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基于iTRAQ的瓦氏黄颡鱼肝脏在急性缺氧条件下的比较定量蛋白质组学分析:对代谢反应的影响

Comparative iTRAQ-Based Quantitative Proteomic Analysis of Pelteobagrus vachelli Liver under Acute Hypoxia: Implications in Metabolic Responses.

作者信息

Zhang Guosong, Zhang Jiajia, Wen Xin, Zhao Cheng, Zhang Hongye, Li Xinru, Yin Shaowu

机构信息

College of Life Sciences, Key Laboratory of Biodiversity and Biotechnology of Jiangsu Province, Nanjing Normal University, Nanjing, Jiangsu, P. R. China.

Department of Life Science, Heze University, Heze, Shandong, P. R. China.

出版信息

Proteomics. 2017 Sep;17(17-18). doi: 10.1002/pmic.201700140. Epub 2017 Sep 6.

Abstract

More and more frequently these days, aquatic ecosystems are being stressed by nutrient enrichment, pollutants, and global warming, leading to a serious depletion in oxygen concentrations. Although a sudden, significant lack of oxygen will result in mortality, fishes can have an acute behavior (e.g., an increase in breathing rate, reduction in swimming frequency) and physiology responses (e.g., increase in oxygen delivery, and reduction in oxygen consumption) to hypoxia, which allows them to maintain normal physical activity. Therefore, in order to shed further light on the molecular mechanisms of hypoxia adaptation in fishes, the authors conduct comparative quantitative proteomics on Pelteobagrus vachelli livers using iTRAQ. The research identifies 511 acute hypoxia-responsive proteins in P. vachelli. Furthermore, comparison of several of the diverse key pathways studied (e.g., peroxisome pathway, PPAR signaling pathway, lipid metabolism, glycolysis/gluco-neogenesis, and amino acid metabolism) help to articulate the different mechanisms involved in the hypoxia response of P. vachelli. Data from proteome analysis shows that P. vachelli can have an acute reaction to hypoxia, including detoxification of metabolic by-products and oxidative stress in light of continued metabolic activity (e.g., peroxisomes), an activation in the capacity of catabolism to get more energy (e.g., lipolysis and amino acid catabolism), a depression in the capacity of biosynthesis to reduce energy consumption (e.g., biosynthesis of amino acids and lipids), and a shift in the aerobic and anaerobic contributions to total metabolism. The observed hypoxia-related changes in the liver proteome of the fish can help to understand or can be related to the hypoxia-related response that takes place in similar conditions in the liver or other proteomes of mammals.

摘要

如今,水生生态系统越来越频繁地受到营养物质富集、污染物和全球变暖的压力,导致氧浓度严重降低。虽然氧气的突然显著缺乏会导致鱼类死亡,但鱼类对缺氧会有急性行为(如呼吸频率增加、游泳频率降低)和生理反应(如氧气输送增加、氧气消耗减少),这使它们能够维持正常的身体活动。因此,为了进一步阐明鱼类缺氧适应的分子机制,作者使用iTRAQ对瓦氏黄颡鱼肝脏进行了比较定量蛋白质组学研究。该研究在瓦氏黄颡鱼中鉴定出511种急性缺氧反应蛋白。此外,对所研究的几个不同关键途径(如过氧化物酶体途径、PPAR信号通路、脂质代谢、糖酵解/糖异生和氨基酸代谢)的比较,有助于阐明瓦氏黄颡鱼缺氧反应中涉及的不同机制。蛋白质组分析数据表明,瓦氏黄颡鱼对缺氧会产生急性反应,包括鉴于持续的代谢活动(如过氧化物酶体)对代谢副产物和氧化应激进行解毒,激活分解代谢能力以获取更多能量(如脂肪分解和氨基酸分解代谢),抑制生物合成能力以减少能量消耗(如氨基酸和脂质的生物合成),以及有氧和无氧对总代谢贡献的转变。在该鱼类肝脏蛋白质组中观察到的与缺氧相关的变化,有助于理解或可能与在哺乳动物肝脏或其他蛋白质组中类似条件下发生的与缺氧相关的反应有关。

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